19. Given the following half-reactions, which are arranged in the same order as in your Chem 132 from top to bottom): Cu2* 2e Cu () Ered +0.337 V If you make a mixture of Pb+, Pb (s), Cu, and Cu (s) all in the same beaker, which way will Electrons flow spontaneously? a. from Cu (s) to Pb2+ b. from Cu to Pb (s) c. from Pb2 to Cu (s) d. from Pb (s) to Cu2 e. from Pb2+ to Cu\'+ Solution by defintion the one with most positive reduction potential undergoes reduction so Copper underoges reduction here Cu+2 + 2e- --> Cu (s) so the electrons are gained by Cu+2 and now lead undergoes oxidation Pb(s) ---> Pb+2 + 2e- so the electrons are lost from Pb(s) now the net reaction is Pb(s) + Cu+2 ---> Pb+2 + Cu(s) so the electrons flow spontaneously from Pb(s) to Cu+2 so the answer is d) from Pb(s) to Cu+2 .